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6 results for “Nepenthes gracilis”
Data from: Pitcher geometry facilitates extrinsically powered 'springboard trapping' in carnivorous Nepenthes gracilis pitcher plants
<div> <p>Carnivorous pitcher plants capture insects in cup-shaped leaves that function as motionless pitfall traps. <em>Nepenthes gracilis</em>, evolved a unique 'springboard' trapping mechanism that exploits the impact energy of falling raindrops to actuate a fast pivoting motion of the canopy-like pitcher lid. We superimposed multiple computerized micro-tomography images of the same pitcher to reveal distinct deformation patterns in lid-trapping <em>N. gracilis</em> and closely related pitfall-trapping <em>N. rafflesiana</em>. We found prominent differences between downward and upward lid displacement in <em>N. gracilis </em>only. Downward displacement was characterised by bending in two distinct deformation zones while upward displacement was accomplished by evenly distributed straightening of the entire upper rear section of the pitcher. This suggests an anisotropic impact response, which may help to maximize initial jerk forces for prey capture, as well as the subsequent damping of the oscillation. Our results point to a key role of pitcher geometry for effective 'springboard' trapping in <em>N. gracilis</em>.</p> </div>
Data from: Pitcher geometry facilitates extrinsically powered ‘springboard trapping’ in carnivorous Nepenthes gracilis pitcher plants
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Data from: Subgenome dominance shapes novel gene evolution in the decaploid pitcher plant Nepenthes gracilis
<p>Subgenome dominance after whole-genome duplication generates distinction in gene number and expression at the level of chromosome sets, but it remains unclear how this process may be involved in evolutionary novelty. Here, we generated a chromosome-scale genome assembly of the Asian pitcher plant <em>Nepenthes</em> <em>gracilis</em> to analyze how its novel traits (dioecy and carnivorous pitcher leaves) are linked to genomic evolution. We found a decaploidal karyotype with a complete set of syntenic chromosomes (2n=10x=80) yet with a clear indication of subgenome dominance and highly diploidized gene contents. The male-linked and pericentromerically located region on the putative sex chromosome was identified in a recessive subgenome and harbored three transcription factors involved in flower and pollen development, including a likely neofunctionalized LEAFY duplicate. Transcriptomic and syntenic analyses suggested that the paleopolyploidization events seeded genes that subsequently formed tandem clusters in recessive subgenomes with the specific expression in the digestive zone, where specialized cells digest prey and absorb derived nutrients. Novel gene evolution in recessive subgenomes is likely to be prevalent there because duplicates were enriched with Nepenthes-specific genes with tissue-specific expression, including those expressed in pitcher-specific tissues. Thus, subgenome dominance likely contributed to evolutionary novelty by allowing recessive subgenomes to serve as a preferred host of novel tissue-specific duplicates. Our results provide insight into how polyploids, which may frequently be evolutionary dead-ends, have given rise to novel traits in exceptionally thriving high-ploidy lineages.</p>
Data from: Subgenome dominance shapes novel gene evolution in the decaploid pitcher plant Nepenthes gracilis
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Data from: Dipteran larvae and microbes facilitate nutrient sequestration in the Nepenthes gracilis pitcher plant host
The fluid-containing traps of Nepenthes carnivorous pitcher plants (Nepenthaceae) are often inhabited by organisms known as inquilines. Dipteran larvae are key components of such communities and are thought to facilitate pitcher nitrogen sequestration by converting prey protein into inorganic nitrogen, although this has never been demonstrated in Nepenthes. Pitcher fluids are also inhabited by microbes, although the relationship(s) between these and the plant is still unclear. In this study, we examined the hypothesis of digestive mutualism between N. gracilis pitchers and both dipteran larvae and fluid microbes. Using dipteran larvae, prey and fluid volumes mimicking in situ pitcher conditions, we conducted in vitro experiments and measured changes in available fluid nitrogen in response to dipteran larvae and microbe presence. We showed that the presence of dipteran larvae resulted in significantly higher and faster releases of ammonium and soluble protein into fluids in artificial pitchers, and that the presence of fluid microbes did likewise for ammonium. We showed also that niche segregation occurs between phorid and culicid larvae, with the former fragmenting prey carcasses and the latter suppressing fluid microbe levels. These results clarify the relationships between several key pitcher-dwelling organisms, and show that pitcher communities facilitate nutrient sequestration in their host.
Data from: Dipteran larvae and microbes facilitate nutrient sequestration in the Nepenthes gracilis pitcher plant host
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